Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have the fowling url "\u0422\u0435\u043A\u0441\u0442 \u043D\u0430 \u043A\u0438\u0440\u0438\u043B\u0438\u0446\u0430" ("Текст на кирилица"). I want to open this url using where browser is

$CHandler = urllib2.HTTPCookieProcessor(cookielib.CookieJar())
browser = urllib2.build_opener(CHandler)
user_agent = '  Mozilla/5.0 (Windows; U; Windows NT 5.1; en-US; rv: Gecko/20110420 Firefox/3.6.17'
browser.addheaders = [('User-agent', user_agent )]

And i get the error: "UnicodeEncodeError: 'ascii' codec can't encode characters in position 12-17: ordinal not in range(128)" I get this url from a json. Cheers!

share|improve this question

1 Answer 1

up vote 4 down vote acceptedТекст на кирилица is not a URL:

  • because it has omitted the http:// (or other) schema;
  • it has spaces in, which aren't valid;
  • because URIs can't contain non-ASCII characters. Only IRIs can, and urllib2 doesn't support them.

So you will need to fix the brokennesses, %-encoding out of band characters (like space -> %20), add the schema if missing, and then convert IRI to URI. To do this conversion you will need to encode the hostname part of the address using the IDN algorithm (Python: s.encode('idna')), then encode any non-ASCII characters in other parts of the address using UTF-8 then %-encoding.

What you want to end up with is:

which is a valid URI accepted by urllib2, but also displays asТекст на кирилица in the browser's address bar when you follow it.

There are lots of functions about that implement IRI-to-URI (most Python web frameworks have something like it, for one). If you want to go the whole hog on correcting and normalising suspect incoming URLs, there's also this.

share|improve this answer
Thank you for your answer. I get the idea but i can't get it to work. import urllib s = '\u0422\u0435\u043A\u0441\u0442\u043D\u0430\u043A\u0438\u0440\u0438\u043B\u0438\‌​‌​u0446\u0430' s = s.encode('UTF-8') print s print urllib.urlencode(s) And I'm getting an error "TypeError: not a valid non-string sequence or mapping object" –  DimDqkov Aug 4 '11 at 11:24
s is a byte string so your \u sequences aren't doing anything. Use u'\u0422...' to get a Unicode string on which you can call encode('utf-8'). Then the URL-encoding function you want is urlquote(). urlencode() takes a mapping of keys and values from which to create a query string, which is not what you want here. –  bobince Aug 4 '11 at 12:42
This did the job for me: # -*- coding: utf-8 -*- import urllib s = unicode('\u0422\u0435\u043A\u0441\u0442\u043D\u0430\u043A\u0438\u0440\u0438\u043‌​B\u0438\‌​‌​u0446\u0430', errors='ignore') s = s.encode('utf-8') print urllib.quote(s) @bobince Thank you! –  DimDqkov Aug 4 '11 at 14:45

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.